| Literature DB >> 35542767 |
O A Bulavchenko1,2, O S Venediktova1,2, T N Afonasenko3, P G Tsyrul'nikov3, A A Saraev1,2, V V Kaichev1,2, S V Tsybulya1,2.
Abstract
The subject of this study was the content of oxygen in mixed oxides with the spinel structure Mn1.7Ga1.3O4 that were synthesized by coprecipitation and thermal treatment in argon at 600-1200 °C. The study revealed the presence of excess oxygen in "low-temperature" oxides synthesized at 600-800 °C. The occurrence of superstoichiometric oxygen in the structure of Mn1.7Ga1.3O4+δ oxide indicates the formation of cationic vacancies, which shows up as a decreased lattice parameter in comparison with "high-temperature" oxides synthesized at 1000-1200 °C; the additional negative charge is compensated by an increased content of Mn3+ cations according to XPS. The low-temperature oxides containing excess oxygen show a higher catalytic activity in CO oxidation as compared to the high-temperature oxides, the reaction temperature was 275 °C. For oxides prepared at 600 and 800 °C, catalytic activity was 0.0278 and 0.0048 cm3 (CO) per g per s, and further increase in synthesis temperature leads to a drop in activity to zero. The process of oxygen loss by Mn1.7Ga1.3O4+δ was studied in detail by TPR, in situ XRD and XPS. It was found that the hydrogen reduction of Mn1.7Ga1.3O4+δ proceeds in two steps. In the first step, excess oxygen is removed, Mn1.7Ga1.3O4+δ → Mn1.7Ga1.3O4. In the second step, Mn3+ cations are reduced to Mn2+ in the spinel structure with a release of manganese oxide as a single crystal phase, Mn1.7Ga1.3O4 → Mn2Ga1O4 + MnO. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35542767 PMCID: PMC9079140 DOI: 10.1039/c7ra11557a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Characteristics of the samples: lattice parameter, average CSR size, weight loss, and excess oxygen δ in Mn1.7Ga1.3O4+ estimated by TG in argon
| Calcination temperature of oxide, °C | Lattice parameter of Mn1.7Ga1.3O4, Å | CSR, Å | Weight loss, % | Estimated oxygen excess |
|---|---|---|---|---|
| 600 | 8.413(4) | 100 | 1.65 | 0.26 |
| 800 | 8.462(1) | 350 | 0.5 | 0.08 |
| 1000 | 8.481(1) | 650 | 0 | 0.00 |
| 1200 | 8.478(1) | >1000 | 0 | 0.00 |
Fig. 1Ga 2p spectra of the studied samples.
Fig. 2Mn 2p spectra of the studied samples. The spectra were normalized to the integral intensity of the corresponding Ga 2p spectra.
Atomic ratios of elements in subsurface layer of samples. The Mn 2p3/2 binding energies. The binding energy scale was calibrated using the Ga 2p3/2 peak at 1117.9 eV
| Sample | [Mn]/[Ga] | Mn 2p3/2 | |||||
|---|---|---|---|---|---|---|---|
| Total | [Mn2+]/[Ga] | [Mn3+]/[Ga] | Mn2+ | Mn3+ | 2+, % | 3+, % | |
| 600 °C | 1.37 | 0.45 | 0.91 | 641.6 | 642.2 | 33 | 67 |
| 800 °C | 1.36 | 0.55 | 0.82 | 641.5 | 642.2 | 40 | 60 |
| 1000 °C | 1.39 | 0.69 | 0.70 | 641.6 | 642.3 | 50 | 50 |
| 1200 °C | 1.87 | 0.97 | 0.91 | 641.5 | 642.3 | 52 | 48 |
Fig. 3The catalytic activity of Mn–Ga oxides per gram of catalyst and per unit surface area in the oxidation of CO at 275 °C for oxides prepared at different temperatures (a), and the dependence of catalytic activity of the Mn–Ga oxides per gram of catalyst and quantity of excess oxygen according to TG data (b).
Fig. 4TPR profiles of Mn1.7Ga1.3O4 600–1200 °C and simple oxides (Mn2O3 and Mn3O4).
TPR data for Mn1.7Ga1.3O4 600–1200 °C
| Sample |
| Amount of absorbed hydrogen, mmol g−1 | Total hydrogen absorption, mmol g−1 |
|---|---|---|---|
| 600 °C | 280 | 0.33 | 3.45 |
| 355 | 1.09 | ||
| 455 | 1.04 | ||
| 600 | 0.99 | ||
| 800 °C | 320 | 0.15 | 2.07 |
| 400 | 0.29 | ||
| 470 | 0.09 | ||
| 680 | 1.57 | ||
| 1000 °C | 770 | 0.93 | 0.93 |
Fig. 5In situ XRD patterns recorded during the hydrogen reduction of Mn–Ga oxide synthesized at 600 °C in the temperature range from 30 to 600 °C. Reflections from Mn1.7Ga1.3O4 spinel are denoted by symbol S.
Fig. 6The lattice parameter of spinel (circles) and the [Mn]/[Ga] atomic ratio on the oxide surface (squares) versus temperature upon hydrogen reduction of the Mn–Ga oxide synthesized at 600 °C. The dynamics of phase transformations is illustrated by the diagram in the upper part of the figure.
Atomic ratios of elements in the subsurface layer of Mn–Ga oxide synthesized at 600 °C under different treatment conditionsa
| Treatment (temperature and medium) | [Mn]/[Ga] | [O*]/[Mn] | [O*]/[Ga] | [O*]/[Mn] + [Ga] | ||
|---|---|---|---|---|---|---|
| Total | [Mn2+]/[Ga] | [Mn3+]/[Ga] | ||||
|
| ||||||
| Fresh | 1.37 | 0.45 | 0.91 | 2.45 | 3.35 | 1.4 |
| 200 °C-Ar | 1.48 | 0.73 | 0.75 | 2.3 | 3.4 | 1.4 |
| 400 °C-Ar | 1.54 | 0.96 | 0.58 | 1.9 | 2.9 | 1.2 |
|
| ||||||
| 280 °C-H2 | 1.81 | 1.04 | 0.77 | 2.31 | 4.17 | 1.5 |
| 360 °C-H2 | 2.33 | 1.00 | 1.33 | 1.39 | 3.23 | 0.97 |
| 450 °C-H2 | 3.26 | 1.22 | 2.04 | 1.24 | 4.03 | 0.95 |
[O*] – oxygen in the structure of mixed oxide.
Mn 2p3/2 and Ga 2p3/2 binding energies (eV). The binding energy scale was calibrated against the Ga 2p3/2 peak at 1117.9 eV
| Treatment (temperature and medium) | Mn 2p3/2 | Ga 2p3/2 | O 1s | |||
|---|---|---|---|---|---|---|
| Mn2+ | Mn3+ | Mn2+, % | Mn3+, % | |||
|
| ||||||
| Fresh | 641.6 | 642.2 | 33 | 67 | 1117.9 | 530.6 |
| 200 °C-Ar | 641.0 | 642.2 | 49 | 51 | 1117.9 | 530.6 |
| 400 °C-Ar | 640.9 | 642.3 | 62 | 38 | 1117.9 | 530.6 |
|
| ||||||
| 280 °C-H2 | 641.1 | 642.2 | 58 | 42 | 1117.9 | 530.6 |
| 360 °C-H2 | 641.1 | 641.8 | 43 | 57 | 1117.9 | 530.6 |
| 450 °C-H2 | 641.1 | 641.8 | 37 | 63 | 1117.9 | 530.3 |
Fig. 7Mn 2p spectra of the studied samples. The spectra were normalized to the integral intensity of the corresponding Ga 2p spectra.
Fig. 8A scheme of transformations upon reduction of Mn1.7Ga1.3O4+ by hydrogen.